Electrochemically Driven Optical Dynamics of Reflectin Protein Films

Y Yin‐Chen Lin (Institute for Collaborative Biotechnologies University of California Santa Barbara CA 93106 USA) C Changxuan Yang (Department of Chemical Engineering University of California Santa Barbara CA 93106 USA) S Seren Tochikura (Department of Molecular Cellular and Developmental Biology University of California Santa Barbara CA 93106 USA) J Joshua R. Uzarski (U.S. Army Combat Capabilities Development Command Soldier Center 15 General Greene Avenue Natick MA 01760 USA) D Daniel E. Morse L Lior Sepunaru M Michael J. Gordon (Institute for Collaborative Biotechnologies)

Abstract

AbstractNeuronally triggered phosphorylation drives the dynamic condensation of reflectin proteins, enabling squid to fine tune the colors reflected from specialized skin cells (iridocytes) for camouflage and communication. Reflectin, the primary component of iridocyte lamellae, forms alternating layers of protein and low refractive index extracellular space within membrane‐encapsulated structures, acting as a biologically tunable distributed Bragg reflector. In vivo, reflectin condensation induces osmotic dehydration of these lamellae, reducing their thickness and shifting the wavelength of reflected light. Inspired by this natural mechanism, we demonstrate that electrochemical reduction of imidazolium moieties within the protein provides a reversible and tunable method to control the water volume fraction in reflectin thin films, allowing precise, dynamic modulation of the film’s refractive index and thickness — mimicking the squid’s dynamic color adaptation. To unravel the underlying mechanisms, we developed electrochemical correlative ellipsometry and surface plasmon resonance spectroscopy, enabling real‐time analysis of optical property changes of reflectin films. This electrochemically driven approach offers unprecedented control over reflectin condensation dynamics. Our findings not only deepen the understanding of biophysical processes governing cephalopod coloration but also pave the way for bio‐inspired materials and devices that seamlessly integrate biological principles with synthetic systems to bridge the biotic‐abiotic gap.

Article Details

Volume / Issue Vol. 37, Issue 12
Published March 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (7)

Y

Yin‐Chen Lin

Institute for Collaborative Biotechnologies University of California Santa Barbara CA 93106 USA

C

Changxuan Yang

Department of Chemical Engineering University of California Santa Barbara CA 93106 USA

S

Seren Tochikura

Department of Molecular Cellular and Developmental Biology University of California Santa Barbara CA 93106 USA

J

Joshua R. Uzarski

U.S. Army Combat Capabilities Development Command Soldier Center 15 General Greene Avenue Natick MA 01760 USA

D

Daniel E. Morse

L

Lior Sepunaru

M

Michael J. Gordon

Institute for Collaborative Biotechnologies